SUBSIDIARY ABSORPTION SPIN-WAVE INSTABILITY PROCESSES IN YTTRIUM-IRON-GARNET THIN-FILMS, CRITICAL MODES, AND THE KINK EFFECT

Citation
G. Wiese et al., SUBSIDIARY ABSORPTION SPIN-WAVE INSTABILITY PROCESSES IN YTTRIUM-IRON-GARNET THIN-FILMS, CRITICAL MODES, AND THE KINK EFFECT, Journal of applied physics, 74(2), 1993, pp. 1218-1228
Citations number
14
Categorie Soggetti
Physics, Applied
Journal title
ISSN journal
00218979
Volume
74
Issue
2
Year of publication
1993
Pages
1218 - 1228
Database
ISI
SICI code
0021-8979(1993)74:2<1218:SASIPI>2.0.ZU;2-I
Abstract
Butterfly curves of the subsidiary absorption spin wave instability th reshold microwave field amplitude versus static field have been measur ed at 10 GHz on a 12.8-mum-thick single crystal yttrium iron garnet fi lm for two field configurations, one with the static magnetic field in plane and the microwave field out of plane (IP case) and the other wi th the static field normal to the film plane and the microwave field i n plane (PI case). The results for the IP case are similar to earlier results which show a ''kink'' in the butterfly curve accompanied by a jump of the critical mode wave number k at the kink field. For the PI case, however, there is no observed kink effect. The different butterf ly curves for the IP and PI cases are explained on the basis of a new theory for thin films which takes into account the discrete standing w ave modes in the film. For the IP case, the theory yields critical mod es with wave vectors in the film plane and the kink effect as before. For the PI case, the critical modes have wave vector k components perp endicular to the film plane, the minimum threshold critical modes are modified significantly, and the theory yields smooth butterfly curves with no kink. Quantitative fits to the data were obtained, based on a single trial function for the k-dependent spin wave linewidth.